Exploration of the Out-of-Phase Phenomenon in Shake Flasks by CFD Calculations of Volumetric Power Input, kLa Value and Shear Rate at Elevated Viscosity

Culture broth with secreted macromolecules and culture broth of filamentous fungi showing disperse growth exhibit elevated viscosity, usually with shear-thinning flow behavior. High viscosity, however, poses a serious challenge in the production and research of these compounds and organisms. It comm...

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Published in:Biotechnology and Bioengineering
Main Author: Dinter C.; Gumprecht A.; Menze M.A.; Azizan A.; Hansen S.; Büchs J.
Format: Article
Language:English
Published: John Wiley and Sons Inc 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85210735708&doi=10.1002%2fbit.28892&partnerID=40&md5=4f733f750ae21a63c1a73c9e0d14ee25
id 2-s2.0-85210735708
spelling 2-s2.0-85210735708
Dinter C.; Gumprecht A.; Menze M.A.; Azizan A.; Hansen S.; Büchs J.
Exploration of the Out-of-Phase Phenomenon in Shake Flasks by CFD Calculations of Volumetric Power Input, kLa Value and Shear Rate at Elevated Viscosity
2024
Biotechnology and Bioengineering


10.1002/bit.28892
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85210735708&doi=10.1002%2fbit.28892&partnerID=40&md5=4f733f750ae21a63c1a73c9e0d14ee25
Culture broth with secreted macromolecules and culture broth of filamentous fungi showing disperse growth exhibit elevated viscosity, usually with shear-thinning flow behavior. High viscosity, however, poses a serious challenge in the production and research of these compounds and organisms. It commonly causes insufficient mixing and oxygen transfer in large- and small-scale bioreactors. Computational Fluid dynamics (CFD) has been proven to be a valuable tool for the computation of important bioprocess parameters. The published literature for small-scale shaken bioreactors, especially shake flasks, however, almost exclusively focuses on water-like viscosity. In this paper, a previously published CFD model for 250 mL shake flasks was used to simulate experiments at high viscosities of up to 100 mPa·s. Compared to experimental data, the CFD model accurately predicted the liquid distribution and computed the volumetric power input with a deviation of less than 7% and the kLa value within a factor of two, compared to the kLa correlation from Henzler and Schedel. Furthermore, a novel approach to compute the shear rate was tested. Lastly, new insights into the out-of-phase phenomenon were gained. The presented data confirms the usefulness of the already established critical phase numbers of 0.91 and 1.26, while underlying the fundamentally smooth transition from in-phase to out-of-phase operating conditions. © 2024 The Author(s). Biotechnology and Bioengineering published by Wiley Periodicals LLC.
John Wiley and Sons Inc
00063592
English
Article

author Dinter C.; Gumprecht A.; Menze M.A.; Azizan A.; Hansen S.; Büchs J.
spellingShingle Dinter C.; Gumprecht A.; Menze M.A.; Azizan A.; Hansen S.; Büchs J.
Exploration of the Out-of-Phase Phenomenon in Shake Flasks by CFD Calculations of Volumetric Power Input, kLa Value and Shear Rate at Elevated Viscosity
author_facet Dinter C.; Gumprecht A.; Menze M.A.; Azizan A.; Hansen S.; Büchs J.
author_sort Dinter C.; Gumprecht A.; Menze M.A.; Azizan A.; Hansen S.; Büchs J.
title Exploration of the Out-of-Phase Phenomenon in Shake Flasks by CFD Calculations of Volumetric Power Input, kLa Value and Shear Rate at Elevated Viscosity
title_short Exploration of the Out-of-Phase Phenomenon in Shake Flasks by CFD Calculations of Volumetric Power Input, kLa Value and Shear Rate at Elevated Viscosity
title_full Exploration of the Out-of-Phase Phenomenon in Shake Flasks by CFD Calculations of Volumetric Power Input, kLa Value and Shear Rate at Elevated Viscosity
title_fullStr Exploration of the Out-of-Phase Phenomenon in Shake Flasks by CFD Calculations of Volumetric Power Input, kLa Value and Shear Rate at Elevated Viscosity
title_full_unstemmed Exploration of the Out-of-Phase Phenomenon in Shake Flasks by CFD Calculations of Volumetric Power Input, kLa Value and Shear Rate at Elevated Viscosity
title_sort Exploration of the Out-of-Phase Phenomenon in Shake Flasks by CFD Calculations of Volumetric Power Input, kLa Value and Shear Rate at Elevated Viscosity
publishDate 2024
container_title Biotechnology and Bioengineering
container_volume
container_issue
doi_str_mv 10.1002/bit.28892
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85210735708&doi=10.1002%2fbit.28892&partnerID=40&md5=4f733f750ae21a63c1a73c9e0d14ee25
description Culture broth with secreted macromolecules and culture broth of filamentous fungi showing disperse growth exhibit elevated viscosity, usually with shear-thinning flow behavior. High viscosity, however, poses a serious challenge in the production and research of these compounds and organisms. It commonly causes insufficient mixing and oxygen transfer in large- and small-scale bioreactors. Computational Fluid dynamics (CFD) has been proven to be a valuable tool for the computation of important bioprocess parameters. The published literature for small-scale shaken bioreactors, especially shake flasks, however, almost exclusively focuses on water-like viscosity. In this paper, a previously published CFD model for 250 mL shake flasks was used to simulate experiments at high viscosities of up to 100 mPa·s. Compared to experimental data, the CFD model accurately predicted the liquid distribution and computed the volumetric power input with a deviation of less than 7% and the kLa value within a factor of two, compared to the kLa correlation from Henzler and Schedel. Furthermore, a novel approach to compute the shear rate was tested. Lastly, new insights into the out-of-phase phenomenon were gained. The presented data confirms the usefulness of the already established critical phase numbers of 0.91 and 1.26, while underlying the fundamentally smooth transition from in-phase to out-of-phase operating conditions. © 2024 The Author(s). Biotechnology and Bioengineering published by Wiley Periodicals LLC.
publisher John Wiley and Sons Inc
issn 00063592
language English
format Article
accesstype
record_format scopus
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